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Structured replacement policies for components with complex degradation processes and dedicated sensors

机译:针对具有复杂降解过程和专用传感器的组件的结构化更换策略

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Failure of many engineering systems usually results from a gradual and irreversible accumulation of damage, a degradation process. Most degradation processes can be monitored using sensor technology. The resulting degradation signals are usually correlated with the degradation process. A system is considered to have failed once its degradation signal reaches a prespecified failure threshold. This paper considers a replacement problem for components whose degradation process can be monitored using dedicated sensors. First, we present a stochastic degradation modeling framework that characterizes, in real time, the path of a component's degradation signal. These signals are used to predict the evolution of the component's degradation state. Next, we formulate a single-unit replacement problem as a Markov decision process and utilize the realtime signal observations to determine a replacement policy. We focus on exponentially increasing degradation signals and show that the optimal replacement policy for this class of problems is a monotonically nondecreasing control limit policy. Finally, the model is used to determine an optimal replacement policy by utilizing vibration-based degradation signals from a rotating machinery application.
机译:许多工程系统的故障通常是由于损坏的逐步累积和不可逆转,退化过程造成的。可以使用传感器技术监控大多数降解过程。所得的降解信号通常与降解过程相关。一旦系统的降级信号达到预定的故障阈值,就认为该系统已发生故障。本文考虑了可以使用专用传感器监控其降解过程的组件的替换问题。首先,我们提出了一种随机退化建模框架,该框架实时表征了组件退化信号的路径。这些信号用于预测组件降解状态的演变。接下来,我们将单个单元的替换问题公式化为马尔可夫决策过程,并利用实时信号观察来确定替换策略。我们关注于指数级增长的降级信号,并表明针对此类问题的最佳替换策略是单调不变的控制极限策略。最后,该模型用于通过利用来自旋转机械应用的基于振动的劣化信号来确定最佳更换策略。

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